Quantum-interference-driven orbital density wave and high-temperature superconductivity in trilayer nickelates
arXiv:2609.24857
Abstract
Intertwined charge-density-wave (CDW) and spin-density-wave (SDW) orders are a hallmark of high-temperature superconducting multilayer nickelates. In trilayer La4Ni3O_{10}, charge correlations develop at temperatures above the onset of long-range spin order, and the characteristic ordering wavevectors satisfy . Here, using a density-wave equation with vertex corrections, we show that quantum interference between short-range SDW fluctuations at on the outer NiO2 layers generates an inter-outer-layer bond order at . This bond order induces a pronounced inner-layer-centered orbital order, with antiphase modulations of the Ni and occupations, producing strong orbital polarization but only weak total charge modulation. This intertwined bond-and-orbital order accounts for the layer-selective electronic reconstruction inferred from NMR/NQR and is consistent with Raman spectroscopy and scanning tunnelling microscopy measurements. The same orbital and spin fluctuations also cooperate to stabilize -wave superconductivity through mirror-parity selection rules. Our results provide a unified microscopic framework for intertwined density-wave order and high-Tc superconductivity in multilayer nickelates.
19 pages, 10 figures